Work place: Department of Electrical Engineering, Shahid Beheshti University, Tehran, Iran
E-mail: m_salimian@sbu.ac.ir
Website:
Research Interests: Engineering
Biography
Mohammad Reza Salimian was born in Tehran, Iran, in 1986. He received the B.Sc. degree from the Semnan University, Semnan, Iran, in 2009, and MSc degree in 2012 from Imam Khomeini International University, Qazvin, Iran. He is currently working toward the PhD degree in Shahid Beheshti University. Tehran, Iran. His research interests are power system protection and dynamic.
By Mohammad Reza Salimian Mohammad Reza Aghamohammadi
DOI: https://doi.org/10.5815/ijisa.2016.07.05, Pub. Date: 8 Jul. 2016
Cascading failures play an important role in creation of blackout. These events consist of lines and generators outages. Online values of voltage, current, angle, and frequency are changing during the cascading events. The percent of blackout can be estimated during the disturbance by neural network. Proper indices must be defined for this purpose. These indices can be computed by online measurement from WAMs. In this paper, voltage, load, lines, and generators indices are defined for estimating the percent of blackout during the disturbance. These indices are used as the inputs of neural networks. A new combinational structure of neural network is used for this purpose. Proposed method is implemented on 39-bus New-England test system.
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